Modelling oxygen transfer using dynamic alpha factors

Water Res. 2017 Nov 1:124:139-148. doi: 10.1016/j.watres.2017.07.032. Epub 2017 Jul 17.

Abstract

Due to the importance of wastewater aeration in meeting treatment requirements and due to its elevated energy intensity, it is important to describe the real nature of an aeration system to improve design and specification, performance prediction, energy consumption, and process sustainability. Because organic loadings drive aeration efficiency to its lowest value when the oxygen demand (energy) is the highest, the implications of considering their dynamic nature on energy costs are of utmost importance. A dynamic model aimed at identifying conservation opportunities is presented. The model developed describes the correlation between the COD concentration and the α factor in activated sludge. Using the proposed model, the aeration efficiency is calculated as a function of the organic loading (i.e. COD). This results in predictions of oxygen transfer values that are more realistic than the traditional method of assuming constant α values. The model was applied to two water resource recovery facilities, and was calibrated and validated with time-sensitive databases. Our improved aeration model structure increases the quality of prediction of field data through the recognition of the dynamic nature of the alpha factor (α) as a function of the applied oxygen demand. For the cases presented herein, the model prediction of airflow improved by 20-35% when dynamic α is used. The proposed model offers a quantitative tool for the prediction of energy demand and for minimizing aeration design uncertainty.

Keywords: Activated sludge; Aeration; Alpha factor; Diffusers; Energy footprint; Modelling; Oxygen transfer.

MeSH terms

  • Biological Oxygen Demand Analysis
  • Oxygen / chemistry*
  • Sewage
  • Waste Disposal, Fluid
  • Wastewater*

Substances

  • Sewage
  • Waste Water
  • Oxygen